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Theoretical analysis of the role played by tissue-optical parameters in the laser ablation process

机译:激光烧蚀过程中组织 - 光学参数发挥作用的理论分析

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The purpose of this work was to gain better overall picture to the thermal process involved in ablation of biological media performed by means of both continuous waves (cw) and pulsed laser irradiations. The theoretical analysis is based upon a computerized laser evaporative model. This scheme has been applied in order to clarify the following situations: (1) Ablation of tissue assimilated as water with finite absorption coefficient. (2) Tissue ablation by cw argon laser using gel (tissue-like phantom material) as a model system for tissue. (3) Skin ablation performed by pulsed Er:YAG laser radiation. In each case the role played by optical absorption in the dynamics of the ablation process is depicted. Typically, it appears that the position of the ablation front (or crater depth) and the transient ablation velocity are both influenced by tissue absorption while the steady-state stays independent on this parameter and evolves linearly with power density. Additionally, the ablation temperature beyond the moving front can reach a maximum higher than ablation threshold temperature. The peak temperature and its location are mediated by tissue type. Calculations show that for small absorption coefficients higher temperatures are reached at deeper levels. In contrast, at fixed absorption coefficient, the growing of the power density increases the peak temperature but reduces the penetration depth of the heated volume. The whole of computed data confirms that thermal laser ablation of tissue can be described as an explosive event and that a decrease of water content in the target alters the penetration depth which control the ablation rate.
机译:本作作品的目的是获得更好的整体图像,以通过连续波(CW)和脉冲激光照射所执行的生物介质所涉及的热过程。理论分析基于计算机化激光蒸发模型。该方案已应用,以澄清以下情况:(1)将组织的消融作为水同化为具有有限吸收系数的水。 (2)CW氩激光使用凝胶(组织状模拟材料)作为组织模型系统的组织消融。 (3)通过脉冲ER进行的皮肤消融:YAG激光辐射。在每种情况下,描绘了通过光学吸收在消融过程的动态中起作用的作用。通常,似乎消融前部(或火山口深度)的位置和瞬态消融速度都受组织吸收的影响,而稳态在该参数上独立于此参数并且以功率密度线性地发展。另外,超出移动前沿的消融温度可以达到比消融阈值温度高的最大值。峰值温度及其位置由组织类型介导。计算表明,对于小吸收系数,在更深层次的水平下达到较高的温度。相反,在固定吸收系数下,功率密度的生长增加了峰值温度,但降低了加热体积的穿透深度。整个计算的数据证实,组织的热激光消融可以被描述为爆炸事件,并且目标中的水含量降低改变了控制烧蚀率的渗透深度。

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